A purification device for gases used in sintering under a reducing atmosphere

By setting a purification cover and purification layer driven by the drive assembly on the top of the sintering inner liner, the problem of gas entering inside and outside the vacuum air atmosphere sintering furnace is solved, sintering quality and efficiency are improved, and cost is reduced.

CN120062998BActive Publication Date: 2025-07-04广东中鹏新能科技有限公司
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Patent Information

Application Number
CN202510550563.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-07-04
Estimated Expiration
2045-04-29

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Abstract

The present application provides a purification device for gases used in reducing atmosphere sintering, which relates to the technical field of atmosphere sintering. It includes a sintering inner liner, a purification device main body, and a driving component. The purification device main body includes a purification cover, an inner lining sealing disc, a vacuum pump, and a limiting sealing disc. An air outlet hole is processed inside the limiting sealing disc, and an exhaust hole is processed at the top of the purification cover; Two erection mesh rings are processed on the top surface of the inner lining sealing disc, and a purification layer is arranged between the two erection mesh rings; By setting a purification cover driven by a driving component on the top of the sintering inner liner, when the vacuum pump pumps the gas inside the sintering inner liner between the inner lining sealing disc and the limiting ring seat to the inside of the purification cover, the waste gas can first pass through the inside of the erection mesh ring and the purification layer from the outside to the inside, and then, after the exhaust hole and the air outlet hole are intermittently communicated, the purified gas is discharged, cooperating with the gas continuously introduced into the sintering inner liner to participate in sintering, which is convenient for improving the sintering quality and sintering efficiency of the target object.
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Description

Technical Field

[0001] The present invention relates to the technical field of atmosphere sintering, and specifically to a purification device for the gas used in reducing atmosphere sintering. Background Art

[0002] Atmosphere sintering is for products that are difficult to sinter in air (such as light-transmitting bodies or non-oxides). To prevent their oxidation, a certain amount of a certain gas is introduced into the furnace chamber, and sintering is carried out under this specific atmosphere.

[0003] According to the different natures of the atmosphere, atmosphere sintering techniques can be divided into: oxidation atmosphere sintering, reducing atmosphere sintering, neutral atmosphere sintering, and controlled volatilization atmosphere sintering methods, etc. In inorganic non-metallic raw materials, many compounds (such as PbO, SnO2, CdO) have a relatively high vapor pressure, which means that these compounds will volatilize in large amounts at relatively low temperatures.

[0004] The vacuum atmosphere sintering furnace, as the main working body of atmosphere sintering, can select a suitable atmosphere sintering according to different materials, which helps the sintering process, improves the densification degree of the product, and obtains products with good properties. The commonly used atmospheres in vacuum atmosphere furnaces include vacuum, hydrogen, oxygen, nitrogen, and inert gases (such as argon), etc. For example, transparent alumina ceramics can be sintered in a hydrogen atmosphere, transparent ferroelectric ceramics are suitable for sintering in an oxygen atmosphere, and nitride ceramics such as aluminum nitride are suitable for sintering in a nitrogen atmosphere. Sometimes, in order to protect the sintering coordination, it is also necessary to operate in a protective atmosphere. For example, a molybdenum wire furnace is suitable for passing hydrogen, and a tungsten wire furnace is suitable for working under vacuum conditions.

[0005] A patent document with the patent publication number CN101890293A, a purification device for the gas used in reducing atmosphere sintering, uses a 1000-mesh polyester wire mesh or nylon wire mesh, reducing iron powder with a particle size of micrometers to micrometers, and silica gel with a particle size of millimeters to millimeters to form each structural layer in the purification device for the gas used in reducing atmosphere sintering, and the reducing iron powder and silica gel are respectively laid flat between two layers of wire meshes; the gas enters the device through the air inlet of the polytetrafluoroethylene barrel body, passes through the wire mesh, reducing iron powder, and silica gel in sequence, and finally is discharged from the air outlet, which can realize the purification of the gas used in reducing atmosphere sintering, with a simple structure, low cost, and easy large-scale production and application.

[0006] However, in the process of implementing the above technical solution, it is found that the above technical solution has the following technical problems:

[0007] When the existing vacuum atmosphere sintering furnace sinters the target object, in order to ensure the internal sealed environment, it is not easy to ensure the sintering environment by using this purification device for the gas used in reducing atmosphere sintering, and it is easy for external gas to enter the inside of the sintering furnace, affecting the sintering quality and sintering efficiency of the target object. Summary of the Invention

[0008] In order to overcome the deficiency that when the existing vacuum atmosphere sintering furnace sinters the target object, due to the need to ensure the internal sealed environment, it is not easy to ensure the sintering environment by using the purification device for the gas used in the reducing atmosphere sintering, and it is easy for external gas to enter the interior of the sintering furnace, affecting the sintering quality and sintering efficiency of the target object. The embodiment of the present application provides a purification device for the gas used in the reducing atmosphere sintering. By arranging a purification cover driven by a driving component at the top of the sintering inner tank, when the vacuum pump pumps the gas inside the sintering inner tank between the inner lining sealing plate and the limit ring seat to the inside of the purification cover, the waste gas can first pass through the inside of the erected mesh ring and the purification layer and be purified. Subsequently, after the exhaust hole and the air outlet are intermittently communicated, the purified gas is discharged. Cooperating with the gas continuously introduced into the sintering inner tank to participate in sintering, the sintering environment inside the sintering inner tank can be ensured, and the sintering quality and sintering efficiency of the target object can be improved.

[0009] The technical solution adopted by the embodiment of the present application to solve its technical problems is as follows:

[0010] A purification device for the gas used in the reducing atmosphere sintering, including a sintering inner tank, a purification device main body, and a driving component. The sintering inner tank is assembled inside the atmosphere sintering vacuum furnace, and the purification device main body is arranged at the outer wall of the top of the sintering inner tank;

[0011] The driving component is arranged inside the purification device main body and is used to drive the purification device main body to rotate on the top of the sintering inner tank;

[0012] The purification device main body includes a purification cover. The inside of the purification cover is provided with an inner lining sealing plate, and a vacuum pump is arranged at the bottom of the inner lining sealing plate. The top of the purification cover is provided with a limit sealing plate. An air outlet is processed inside the limit sealing plate, and an exhaust hole is processed at the top of the purification cover; Two erected mesh rings arranged coaxially are processed on the top surface of the inner lining sealing plate, and a purification layer is arranged between the two erected mesh rings;

[0013] Among them, the vacuum pump pumps air from inside the sintering inner tank and sends it into the inside of the purification cover through the inner lining sealing plate. After passing through the inside of the purification layer, the driving component controls the purification cover to rotate between the limit sealing plate and the inner lining sealing plate, so that the air outlet and the exhaust hole are intermittently communicated, and the gas is discharged.

[0014] In a possible implementation manner, a limit ring seat is processed on the outer wall of the top of the sintering inner tank, a plurality of support legs are processed on the outer side of the bottom of the inner lining sealing plate, a support column is processed on the top of the inner lining sealing plate, and a positioning sleeve is processed at the center of the bottom of the limit sealing plate; The inside of the positioning sleeve is threadedly connected with the support column through a fastening bolt to fix the limit sealing plate and the inner lining sealing plate, and the support legs are assembled to the inner wall of the bottom of the limit ring seat.

[0015] In a possible implementation, a support sleeve is provided on the outer side of the support column and is processed on the top surface of the inner lining sealing plate. A prism groove is processed inside the support sleeve, and a prism sleeve is processed inside the positioning sleeve; the prism sleeve is slidably connected inside the support sleeve, and the prism sleeve is slidably connected to the outside of the support column.

[0016] In a possible implementation, a spring is sleeved on the outside of the support sleeve, the positioning sleeve is sleeved on the outside of the support sleeve, the spring is located inside the positioning sleeve, and is supported between the inner lining sealing plate and the positioning sleeve.

[0017] In a possible implementation, balls are provided on the bottom inner wall of the limit ring seat, and multiple balls all support the bottom of the purification cover.

[0018] In a possible implementation, the drive assembly includes an air inlet sleeve, and an installation support sleeve is assembled and connected between the top of the air inlet sleeve and the bottom of the inner lining sealing plate; the air extraction port end of the vacuum pump is connected to the inside of the sintering inner tank, and the air outlet end of the vacuum pump is connected to the bottom of the air inlet sleeve, so that the waste gas enters between the purification cover and the inner lining sealing plate through the air inlet sleeve and the installation support sleeve.

[0019] In a possible implementation, a fan is provided inside the installation support sleeve, a driving gear is provided on the top of the fan, and an internal gear ring is processed on the top side wall of the purification cover; the fan is inside the installation support sleeve and is driven by the flowing gas to drive the driving gear to rotate. By using the meshing of the driving gear and the internal gear ring, the purification cover is driven to rotate on the top of the limit ring seat.

[0020] In a possible implementation, a support shaft rod is connected to the inside of the driving gear in a pin-connected manner, and one end of the support shaft rod is pin-connected to the inside of the fan and passes through the inside of the fan.

[0021] In a possible implementation, a bearing support is processed on the bottom inner wall of the installation support sleeve, and a bearing is in interference fit at the center of the top of the bearing support; the bearing is in interference fit with the inside of the bottom of the fan, the bottom of the support shaft rod is in interference fit with the inside of the bearing, and one end of the support shaft rod is rotatably connected to the inside of the center of the bearing support.

[0022] In a possible implementation, the air outlet holes opened on the limit sealing plate and the exhaust holes opened on the purification cover are both located inside the erected mesh ring. The gas to be treated flows from the periphery to the center inside the purification cover, and after passing through the inside of the purification layer, it is discharged to the outside through the air outlet holes and the exhaust holes in the connected state.

[0023] The beneficial effects of this application are:

[0024] First, in this solution, a purification cover driven by a driving component is arranged at the top of the sintering inner liner. When the vacuum pump pumps the gas inside the sintering inner liner between the inner liner sealing disc and the limit ring seat to the inside of the purification cover, the waste gas can first pass through the inside of the erected mesh ring and the purification layer from the outside to the inside and be purified. Subsequently, after the exhaust hole and the air outlet are intermittently communicated, the purified gas is discharged. Cooperating with the gas continuously introduced into the sintering inner liner to participate in sintering, the sintering environment inside the sintering inner liner can be ensured, and the sintering quality and efficiency of the target object can be improved.

[0025] Second, in this solution, by sleeving a spring outside the support sleeve, making the spring located inside the positioning sleeve and supported between the inner liner sealing disc and the positioning sleeve, the threaded connection of the fastening bolt and the support column can be adjusted according to the actual situation to control the gap between the surface of the limit sealing disc and the top surface of the purification cover.

[0026] Third, in this solution, by arranging a driving component between the inner liner sealing disc and the limit ring seat, when the vacuum pump extracts waste gas from the inside of the sintering inner liner and sends the waste gas into the inside of the purification cover through the air inlet sleeve and the installation support sleeve, the rotation of the fan can be driven by the flow of the waste gas to provide power, so that the driving gear pinned to the top of the support shaft rod rotates. By means of the meshing of the driving gear and the internal gear ring, the purification cover can be driven to rotate on the top of the limit ring seat, which is beneficial to the use of electrical components and reduces costs. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 is a schematic structural diagram of a gas purification device for sintering in a reducing atmosphere according to the present invention;

[0028] Figure 2 is an external structural diagram of a gas purification device for sintering in a reducing atmosphere according to the present invention;

[0029] Figure 3 is an exploded view of a gas purification device for sintering in a reducing atmosphere according to the present invention;

[0030] Figure 4 is a cross-sectional view of the purification cover of a gas purification device for sintering in a reducing atmosphere according to the present invention;

[0031] Figure 5 is a gas purification device for sintering in a reducing atmosphere according to the present invention Figure 4 in the enlarged schematic view of part A;

[0032] Figure 6 is a cross-sectional view of the driving component of a gas purification device for sintering in a reducing atmosphere according to the present invention;

[0033] Figure 7 is a schematic connection structure diagram of the inner liner sealing disc and the limit sealing disc of a gas purification device for sintering in a reducing atmosphere according to the present invention;

[0034] Figure 8 Purification device for gas used in sintering in a reducing atmosphere according to the present invention Figure 7 Enlarged schematic view of part B in the figure.

[0035] Reference numerals:

[0036] 1. Atmosphere sintering vacuum furnace; 2. Sintering inner liner;

[0037] 3. Purification device main body; 301. Purification cover; 302. Limit ring seat; 303. Limit sealing disc; 304. Internal gear ring; 305. Inner lining sealing disc; 306. Fastening bolt; 307. Prism sleeve; 308. Positioning sleeve; 309. Support leg; 310. Vacuum pump; 311. Ball; 312. Support column; 313. Support sleeve; 314. Spring;

[0038] 4. Air outlet hole; 5. Laying net ring; 6. Purification layer; 7. Exhaust hole;

[0039] 8. Driving assembly; 801. Driving gear; 802. Installation support sleeve; 803. Air inlet sleeve; 804. Support shaft rod; 805. Fan; 806. Bearing; 807. Bearing support;

[0040] 9. Prism groove. Specific implementation mode

[0041] The technical solution in the embodiment of the present application is to solve the problems in the above background technology, and the general idea is as follows:

[0042] Embodiment 1: This embodiment introduces the specific structure of a purification device for gas used in sintering in a reducing atmosphere. Specifically, refer to Figures 1-3 、 Figure 7 and Figure 8 As shown, it includes a sintering inner liner 2 assembled inside the atmosphere sintering vacuum furnace 1, a purification device main body 3 arranged on the outer wall of the top of the sintering inner liner 2, and a driving assembly 8 arranged inside the purification device main body 3 (for driving the purification device main body 3 to rotate on the top of the sintering inner liner 2). The purification device main body 3 includes a purification cover 301. An inner lining sealing disc 305 is arranged inside the purification cover 301. A vacuum pump 310 is arranged at the bottom of the inner lining sealing disc 305. A limit sealing disc 303 is arranged at the top of the purification cover 301. An air outlet hole 4 is machined inside the limit sealing disc 303. An exhaust hole 7 is machined at the top of the purification cover 301;

[0043] Two coaxially arranged laying net rings 5 are machined on the top surface of the inner lining sealing disc 305. A purification layer 6 is arranged between the two laying net rings 5;

[0044] Among them, by making the air outlet holes 4 formed in the limit sealing plate 303 and the exhaust holes 7 formed in the purification cover 301 both located inside the erected mesh ring 5, when the vacuum pump 310 evacuates the air from the inside of the sintering inner container 2 and sends it into the inside of the purification cover 301 through the inner lining sealing plate 305, the gas to be treated can flow from the periphery to the center inside the purification cover 301. After passing through the inside of the purification layer 6, the driving assembly 8 controls the purification cover 301 to rotate between the limit sealing plate 303 and the inner lining sealing plate 305, so that the air outlet holes 4 and the exhaust holes 7 are intermittently communicated, and the gas is discharged (discharged to the outside through the air outlet holes 4 and the exhaust holes 7 in the communicating state);

[0045] Secondly, in order to fix the limit sealing plate 303 to the top of the purification cover 301, the limit sealing plate 303 is used to block the top of the purification cover 301, so that the purification cover 301 is stably located between the limit ring seat 302 and the limit sealing plate 303. As shown in Figure 3 , Figure 7 and Figure 8 , a limit ring seat 302 is machined on the outer wall of the top of the sintering inner container 2, a plurality of support legs 309 are machined on the outer side of the bottom of the inner lining sealing plate 305, a support column 312 is machined on the top of the inner lining sealing plate 305, and a positioning sleeve 308 is machined at the center of the bottom of the limit sealing plate 303. By passing the fastening bolt 306 through the inside of the positioning sleeve 308 and threadedly connecting it with the support column 312, after fixing the limit sealing plate 303 and the support column 312, a relatively closed space for gas purification treatment can be formed between the inside of the limit sealing plate 303, the inner lining sealing plate 305 and the purification cover 301;

[0046] At the same time, by assembling the support legs 309 to the bottom inner wall of the limit ring seat 302, the inner lining sealing plate 305 can be fixed to the top of the limit ring seat 302, and the vacuum pump 310 is located between the inner lining sealing plate 305 and the limit ring seat 302;

[0047] Furthermore, in order to prevent the limit sealing plate 303 from tending to rotate when the purification cover 301 rotates between the limit sealing plate 303 and the inner lining sealing plate 305, causing the connection between the fastening bolt 306 and the support column 312 to become loose. As shown in Figure 7 and Figure 8 , a support sleeve 313 is arranged on the outer side of the support column 312 and machined on the top surface of the inner lining sealing plate 305. A prism groove 9 is machined inside the support sleeve 313, and a prism sleeve 307 is machined inside the positioning sleeve 308. By making the prism sleeve 307 slidably connected inside the support sleeve 313 and slidably connected to the outside of the support column 312, the rotation of the prism sleeve 307 can be restricted by means of the support sleeve 313, ensuring that the limit sealing plate 303 can only move up and down at the top of the purification cover 301;

[0048] Meanwhile, by sleeving a spring 314 outside the support sleeve 313, the positioning sleeve 308 is sleeved outside the support sleeve 313. The spring 314 is located inside the positioning sleeve 308 and is supported between the inner lining sealing disc 305 and the positioning sleeve 308. According to the actual situation, the threaded connection of the fastening bolt 306 and the support column 312 can be adjusted to compress the spring 314 to different degrees, which is beneficial to controlling the gap between the surface of the limit sealing disc 303 and the top surface of the purification cover 301.

[0049] In the above design, a purification cover 301 driven by a driving component 8 to rotate is arranged at the top of the sintering inner tank 2, and a relatively closed space is formed inside the purification cover 301 by using the inner lining sealing disc 305 inside the purification cover 301 and the limit sealing disc 303 at the top of the purification cover 301. When the vacuum pump 310 pumps the gas inside the sintering inner tank 2 between the inner lining sealing disc 305 and the limit ring seat 302 to the inside of the purification cover 301, the waste gas generated by the atmosphere sintering can first pass through the inside of the erected mesh ring 5 and the purification layer 6 (the waste gas passes from the outside to the inside of the overall structure of the erected mesh ring 5 and the purification layer 6) and be purified (such as the well-known treatment technology in the art). Subsequently, with the purification cover 301 in a rotating state, the exhaust hole 7 is communicated with the air outlet hole 4 inside the limit sealing disc 303, and the purified gas can be discharged.

[0050] Meanwhile, when it is necessary to control the gap between the limit sealing disc 303 and the limit ring seat 302, the threaded connection of the fastening bolt 306 and the support column 312 is adjusted (at this time, the prism sleeve 307 is slidably connected inside the support sleeve 313 to ensure that the limit sealing disc 303 can only move up and down on the top of the purification cover 301), and the spring 314 is compressed to different degrees, which is beneficial to controlling the gap between the surface of the limit sealing disc 303 and the top surface of the purification cover 301.

[0051] It should be noted that the driving component 8 drives the purification cover 301 to rotate between the limit sealing disc 303 and the limit ring seat 302, which can be controlled in the form of cooperation of a motor, a gear and a gear ring, etc.

[0052] Meanwhile, the target object is continuously sintered inside the sintering inner tank 2, and the gas participating in the sintering is continuously introduced into the sintering inner tank 2 during the sintering process. After the waste gas is generated, the vacuum pump 310 continuously pumps the gas outwards to ensure the unidirectional flow of the gas, which is beneficial to intermittently discharging the waste gas by means of the continuously input sintering gas and improving the sintering quality and efficiency of the target object.

[0053] Embodiment 2: Based on Embodiment 1, as Figures 2-7As shown, this embodiment introduces the specific structure of the driving assembly 8, which includes an air inlet sleeve 803, a mounting sleeve 802 is assembled and connected between the top of the air inlet sleeve 803 and the bottom of the liner sealing disk 305, a fan 805 is arranged on the inner side of the mounting sleeve 802, a driving gear 801 is arranged on the top of the fan 805, and an inner gear ring 304 is processed at the top side wall of the purification cover 301;

[0054] like Figure 6 As shown, the driving gear 801 is pin-connected with a supporting shaft 804, the bottom inner wall of the mounting sleeve 802 is processed with a bearing bracket 807, and the top center of the bearing bracket 807 is interference-fitted with a bearing 806;

[0055] By connecting the exhaust port of the vacuum pump 310 to the interior of the sintered liner 2 and connecting the exhaust port of the vacuum pump 310 to the bottom of the air inlet sleeve 803, the exhaust gas can enter between the purification hood 301 and the liner sealing disk 305 through the air inlet sleeve 803 and the mounting support sleeve 802, ensuring that the exhaust gas is pumped by the vacuum pump 310 to between the limit sealing disk 303, the liner sealing disk 305 and the inner wall of the purification hood 301;

[0056] Secondly, by placing the fan 805 on the inner side of the mounting sleeve 802, when one end of the support shaft 804 is pinned to the inside of the fan 805 and passes through the inside of the fan 805, the exhaust gas can flow from the bottom to the top inside the mounting sleeve 802 to drive the driving gear 801 to rotate, and the driving gear 801 can be meshed with the inner gear ring 304 to drive the purification cover 301 to rotate on the top of the limiting ring seat 302;

[0057] At the same time, by making the bearing 806 interference fit to the inner side of the bottom of the fan 805, the bottom of the support shaft 804 interference fit to the inner side of the bearing 806, and one end of the support shaft 804 rotatably connected to the inner side of the center of the support bracket 807, the fan 805 can drive the driving gear 801 to rotate synchronously through the support shaft 804, and the bearing 806 can be used to reduce the resistance, and the support shaft 804 can be positioned by means of the cooperation between one end of the support shaft 804 and the support bracket 807, so as to limit the swing of the driving gear 801 during the rotation process;

[0058] Furthermore, when the fan 805 driven by the flow of exhaust gas drives the supporting shaft 804 to rotate, the driving gear 801 at one end of the supporting shaft 804 engages with the inner gear ring 304, so that the purification cover 301 can be driven to rotate on the top of the limiting ring seat 302. At this time, by arranging balls 311 on the bottom inner wall of the limiting ring seat 302, multiple balls 311 are supported on the bottom of the purification cover 301, which can reduce the resistance of the purification cover 301 during rotation.

[0059] In the above design, by arranging a driving component 8 between the inner lining sealing disc 305 and the limit ring seat 302, when the vacuum pump 310 extracts waste gas from the inside of the sintering inner tank 2 and sends the waste gas into the inside of the purification cover 301 through the air inlet sleeve 803 and the mounting support sleeve 802, the flowing waste gas can be used to drive the fan 805 to drive the support shaft rod 804 to rotate. The driving gear 801 at one end of the support shaft rod 804 can be meshed with the internal gear ring 304 to drive the purification cover 301 to rotate on the top of the limit ring seat 302, which is beneficial to saving the use of power components and thus achieving the effect of reducing costs.

[0060] Finally, it should be noted that: Obviously, the above embodiments are only examples for clearly illustrating the present invention and are not limitations on the implementation manners. For those of ordinary skill in the art, other different forms of changes or variations can be made on the basis of the above description. It is not necessary and impossible to list all the implementation manners here. The obvious changes or variations derived therefrom are still within the protection scope of the present invention.

Claims

1. A purification device for the gas used in sintering under a reducing atmosphere, characterized in that, include: A sintering liner (2) mounted inside the atmosphere sintering vacuum furnace (1); A purification device body (3) disposed on the outer wall of the top of the sintered inner tank (2); A driving assembly (8) disposed inside the purification device body (3) and used to drive the purification device body (3) to rotate on the top of the sintered inner container (2); The purification device body (3) comprises a purification hood (301), an inner lining sealing disk (305) is arranged on the inner side of the purification hood (301), a vacuum pump (310) is arranged at the bottom of the inner lining sealing disk (305), a limit sealing disk (303) is arranged on the top of the purification hood (301), an air outlet hole (4) is processed inside the limit sealing disk (303), and an exhaust hole (7) is processed on the top of the purification hood (301); The top surface of the inner liner sealing disk (305) is processed with two coaxially arranged mesh rings (5), and a purification layer (6) is arranged between the two mesh rings (5); The driving assembly (8) comprises an air inlet sleeve (803), a mounting sleeve (802) is assembled and connected between the top of the air inlet sleeve (803) and the bottom of the liner sealing disk (305), a fan (805) is arranged on the inner side of the mounting sleeve (802), a driving gear (801) is arranged on the top of the fan (805), and an inner gear ring (304) is processed on the top side wall of the purification cover (301); The exhaust port of the vacuum pump (310) is connected to the interior of the sintered inner container (2), and the exhaust port of the vacuum pump (310) is connected to the bottom of the air inlet sleeve (803), so that the exhaust gas enters between the purification cover (301) and the liner sealing disk (305) through the air inlet sleeve (803) and the mounting support sleeve (802); the fan (805) is located on the inner side of the mounting support sleeve (802), and is driven by the flowing gas to drive the driving gear (801) to rotate, and the driving gear (801) is used to generate a fan. 1) meshes with the inner gear ring (304), driving the purification cover (301) to rotate on the top of the limiting ring seat (302), the air outlet (4) provided on the limiting sealing disk (303) and the exhaust hole (7) provided on the purification cover (301) are both located on the inner side of the mesh ring (5), and the gas to be treated flows from the surroundings of the inner side of the purification cover (301) to the center, and after passing through the inside of the purification layer (6), it is discharged to the outside through the air outlet (4) and the exhaust hole (7) in a connected state; The vacuum pump (310) extracts air from the interior of the sintered inner tank (2) and delivers the air through the liner sealing disk (305) into the interior of the purification hood (301). After passing through the interior of the purification layer (6), the driving component (8) controls the purification hood (301) to rotate between the limiting sealing disk (303) and the liner sealing disk (305), so that the air outlet (4) and the exhaust hole (7) are intermittently connected, and the gas is discharged.

2. The purification device for the gas used in reducing atmosphere sintering according to claim 1, characterized in that: A limiting ring seat (302) is machined on the outer wall of the top of the sintered inner liner (2). A plurality of support legs (309) are machined on the outer side of the bottom of the inner liner sealing disc (305). A support column (312) is machined on the top of the inner liner sealing disc (305). A positioning sleeve (308) is machined at the center of the bottom of the limiting sealing disc (303). Among them, the inside of the positioning sleeve (308) is threadedly connected to the support column (312) through a fastening bolt (306) to fix the limiting sealing disc (303) and the inner liner sealing disc (305), and the support legs (309) are assembled to the inner wall of the bottom of the limiting ring seat (302).

3. The purification device for the gas used in reducing atmosphere sintering according to claim 2, characterized in that: A support sleeve (313) is arranged on the outer side of the support column (312) and is machined on the top surface of the inner liner sealing disc (305). A prism groove (9) is machined inside the support sleeve (313). A prism sleeve (307) is machined inside the positioning sleeve (308). Among them, the prism sleeve (307) is slidably connected inside the support sleeve (313), and the prism sleeve (307) is slidably connected to the outside of the support column (312).

4. The purification device for the gas used in the reducing atmosphere sintering according to claim 3, characterized in that: A spring (314) is sleeved on the outside of the support sleeve (313). The positioning sleeve (308) is sleeved on the outside of the support sleeve (313). The spring (314) is located inside the positioning sleeve (308) and is supported between the inner liner sealing disc (305) and the positioning sleeve (308).

5. The purification device for the gas used in reducing atmosphere sintering according to claim 2, wherein: A ball (311) is arranged on the inner wall of the bottom of the limiting ring seat (302), and a plurality of the balls (311) are all supported on the bottom of the purification cover (301).

6. The purification device for the gas used in the reducing atmosphere sintering according to claim 1, characterized in that: A support shaft rod (804) is connected to the inside of the driving gear (801) in a pin-connected manner. One end of the support shaft rod (804) is pin-connected to the inside of the fan (805) and passes through the inside of the fan (805).

7. The purification device for the gas used in reducing atmosphere sintering according to claim 6, characterized in that: A bearing support (807) is machined on the inner wall of the bottom of the mounting support sleeve (802). A bearing (806) is press-fitted at the center of the top of the bearing support (807). Among them, the bearing (806) is press-fitted to the inside of the bottom of the fan (805). The bottom of the support shaft rod (804) is press-fitted to the inside of the bearing (806), and one end of the support shaft rod (804) is rotatably connected to the inside of the center of the bearing support (807).

Citation Information

Patent Citations

  • Purification device for reduction atmosphere sintering gas

    CN101890293A

  • Take atmosphere purification performance's catalytic debinding stove

    CN206732138U